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May 27, 2026Nature Communications0 citationsOpen Access

Dynamics of dislocation formations and their impacts on exsolution in Ru-doped perovskite oxide

SCSungwook ChoiSogang UniversityYLYounghwan LimKorea Institute of Science and TechnologyPGPuspendu GuhaSeoul National University

Key Points

  • This research aims to understand the relationship between dopant transport and exsolution in Ru-doped perovskite oxides.
  • Utilized in situ Bragg coherent X-ray diffraction imaging and transmission electron microscopy.
  • Investigated dislocation dynamics and their role in transporting Ru dopants during exsolution.
  • Analyzed reduction processes of Ru-doped BaCe0.85Y0.1Ru0.05O3-δ.
  • Showed that dislocations nucleate in the bulk and propagate to the surface.
  • Verified that Ru dopants are directly correlated with mixed dislocation formations.
  • Demonstrated that mixed dislocations serve as mobile vehicles for Ru transport to the surface.

Abstract

Self-assembled metal nanoparticles exsolved from host oxides have gained prominence in catalysis and electrochemistry owing to their exceptional activity and stability. Understanding the relation between dopant transport and exsolution is important, as the transport mechanism of dopants toward the surface of the host oxide directly influences exsolution sites, density, and dispersion, ultimately determining catalytic functionality. However, the pathways for dopant transport and their interactions with internal defects during exsolution remain unclear due to the complexity of defects hidden in the bulk. Here, we reveal the exsolution pathway mediated by dislocation evolution within a host oxide perovskite. By employing in situ Bragg coherent X-ray diffraction imaging and transmission electron microscopy, we show that dislocations nucleate in the bulk interior and propagate to the surface during the reduction of Ru-doped BaCe0.85Y0.1Ru0.05O3-δ. Moreover, we verify that the Ru dopant is specifically correlated with the formation of mixed dislocations, which act as mobile vehicles that dynamically carry Ru defects to the surface in tandem with dislocation propagation. These findings advance our understanding of dislocation dynamics and support the development of exsolved metal nanoparticles for next-generation catalysts. Using in situ Bragg coherent X-ay imaging and TEM analyses, the authors show Ru-doped perovskite exsolution occurs selectively at mixed dislocations that propagate from particle interiors as mobile vehicles, dynamically transporting Ru to surfaces.

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Cite This Study

Choi et al. (2026) studied this question.

synapsesocial.com/papers/6a168b160c924ddd1bd59e08https://doi.org/10.1038/s41467-026-73457-7
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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